首页> 外文会议>8th Biennial Conference on Engineering Systems Design and Analysis 2006 vol.1 >COMPUTATIONAL AEROACOUSTIC OF BUFFETING PHENOMENA COMING FROM AN OPEN SUNROOf
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COMPUTATIONAL AEROACOUSTIC OF BUFFETING PHENOMENA COMING FROM AN OPEN SUNROOf

机译:敞篷天窗产生的充气现象的计算空气声

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In the last years aeroacoustics has become one of the most active research fields in the transportation industry: the success of new models of airplanes, trains, trucks and cars relies more and more on the level of comfort for passengers, where acoustic comfort plays a major role. Moreover, the progress in numerical techniques and in available computing power, has provided industry with more efficient and robust simulation techniques in the field of aerodynamically generated sound. Great efforts were spent by CRF in the past years in the development of tools for the prediction of noise levels associated with aeroacoustic phenomena and simulation of turbulent unsteady phenomena became possible (or even practical) much earlier than it was expected, even if limited to simplified cases. Today with the use of the supercomputing environment it is becoming possible to face real problems in realistic configurations, like aerodynamic noise from a complete car or from fluid-acoustic resonance of cavities. One example of this last case is represented by the buffeting phenomenon. It takes place when opening the sunroof, external flow comes into contact with the passenger compartment cavity. When the fluid-dynamic fluctuations of the external flow match one of the acoustic modes of the internal cavity resonance takes place: acoustic oscillations feed energy to the fluid-dynamic oscillation of the external flow, which respond with the generation of coherent structures (vortices traveling through the sunroof opening) that in turn feed more energy back to the acoustic modes, until an equilibrium is reached and steady oscillations take place. This paper describes recent development of aeroacoustic simulation of this phenomena, giving an overview on data coming from computation on sunroof systems with and without deflector and comparing these results with experimental data measured into wind tunnel.
机译:在过去的几年中,航空声学已经成为交通运输行业中最活跃的研究领域之一:飞机,火车,卡车和汽车的新模型的成功越来越依赖于乘客的舒适度,而声学舒适度在其中起着举足轻重的作用。角色。此外,数值技术和可用计算能力的进步为空气动力学产生的声音领域提供了更有效,更强大的仿真技术。在过去的几年中,CRF在开发用于预测与空气声现象相关的噪声水平的工具上付出了巨大的努力,并且比预期的要早得多(甚至什至实际)的湍流不稳定现象的模拟成为可能,即使仅限于简化案件。如今,通过使用超级计算环境,有可能在实际配置中面临实际问题,例如整车或空腔的流体声共振产生的空气动力噪声。最后一种情况的一个例子是抖振现象。它在打开天窗时发生,外部气流与车厢腔接触。当外部流的流体动力学波动与内部空腔共振的一种声学模式相匹配时,就会发生:声振荡将能量馈送到外部流的流体动力学振荡中,并与相干结构(涡流的传播)相对应通过天窗开口),进而将更多的能量反馈回声学模式,直到达到平衡并发生稳定的振荡。本文介绍了这种现象的航空声学仿真技术的最新进展,概述了带和不带导流板的天窗系统计算所得的数据,并将这些结果与在风洞中测得的实验数据进行了比较。

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